US11877043B2 - Optical lens, camera module and camera - Google Patents
Optical lens, camera module and camera Download PDFInfo
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- US11877043B2 US11877043B2 US17/585,507 US202217585507A US11877043B2 US 11877043 B2 US11877043 B2 US 11877043B2 US 202217585507 A US202217585507 A US 202217585507A US 11877043 B2 US11877043 B2 US 11877043B2
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- 230000003287 optical effect Effects 0.000 title claims abstract description 156
- 238000003384 imaging method Methods 0.000 claims abstract description 34
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- 230000008569 process Effects 0.000 claims description 3
- 230000004075 alteration Effects 0.000 description 23
- 238000010586 diagram Methods 0.000 description 23
- 238000013461 design Methods 0.000 description 8
- 230000035945 sensitivity Effects 0.000 description 6
- 206010010071 Coma Diseases 0.000 description 2
- 238000012937 correction Methods 0.000 description 2
- 238000005516 engineering process Methods 0.000 description 2
- 238000004519 manufacturing process Methods 0.000 description 2
- 239000000463 material Substances 0.000 description 2
- 238000012634 optical imaging Methods 0.000 description 2
- 230000000295 complement effect Effects 0.000 description 1
- 238000011161 development Methods 0.000 description 1
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- 229910044991 metal oxide Inorganic materials 0.000 description 1
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Classifications
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B13/00—Optical objectives specially designed for the purposes specified below
- G02B13/001—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
- G02B13/0015—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design
- G02B13/002—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface
- G02B13/0045—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface having five or more lenses
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/50—Constructional details
- H04N23/55—Optical parts specially adapted for electronic image sensors; Mounting thereof
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B13/00—Optical objectives specially designed for the purposes specified below
- G02B13/001—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
- G02B13/0055—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras employing a special optical element
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B15/00—Optical objectives with means for varying the magnification
- G02B15/14—Optical objectives with means for varying the magnification by axial movement of one or more lenses or groups of lenses relative to the image plane for continuously varying the equivalent focal length of the objective
- G02B15/145—Optical objectives with means for varying the magnification by axial movement of one or more lenses or groups of lenses relative to the image plane for continuously varying the equivalent focal length of the objective having five groups only
- G02B15/1451—Optical objectives with means for varying the magnification by axial movement of one or more lenses or groups of lenses relative to the image plane for continuously varying the equivalent focal length of the objective having five groups only the first group being positive
- G02B15/145117—Optical objectives with means for varying the magnification by axial movement of one or more lenses or groups of lenses relative to the image plane for continuously varying the equivalent focal length of the objective having five groups only the first group being positive arranged +---+
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B9/00—Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or -
- G02B9/60—Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or - having five components only
-
- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B9/00—Exposure-making shutters; Diaphragms
- G03B9/02—Diaphragms
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B13/00—Optical objectives specially designed for the purposes specified below
- G02B13/18—Optical objectives specially designed for the purposes specified below with lenses having one or more non-spherical faces, e.g. for reducing geometrical aberration
-
- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B30/00—Camera modules comprising integrated lens units and imaging units, specially adapted for being embedded in other devices, e.g. mobile phones or vehicles
Definitions
- the present disclosure relates to the field of optical lens technologies, and particularly to an optical lens, a camera module and a camera.
- the inventor found from the research on related camera lenses that, as people's requirements for image quality gradually increase, the size of the used chip is increased and the volume of the camera lens is accordingly increased, which makes it difficult for an optical lens to continue developing towards miniaturization while ensuring the image quality.
- an optical lens is provided by the embodiments of the present disclosure. From an object side to an image side along an optical axis, the optical lens sequentially includes: a first lens with a positive focal power, where an object side surface of the first lens is convex; a second lens with a negative focal power; a third lens with a negative focal power; a fourth lens with a negative focal power; a fifth lens with a positive focal power, where an object side surface of the fifth lens is convex at a paraxial region thereof and an image side surface of the fifth lens is concave at a paraxial region thereof; a stop disposed between the second lens and the third lens; and a filter disposed between the fifth lens and an imaging plane.
- the first lens, the second lens, the third lens, the fourth lens and the fifth lens are all aspherical lenses.
- the optical lens satisfies an expression: ⁇ 1 ⁇ f 12 /f 345 ⁇ 0:
- an imaging device in another aspect, which includes the above-mentioned optical lens, and an imaging component configured to convert an optical image formed by the optical lens into an electronic signal.
- a camera module which includes the above-mentioned optical lens and an image sensor opposite to the optical lens.
- a camera which includes the camera module as mentioned above, a processor and a memory.
- the camera module is configured to capture one or more images.
- the processor is configured to process the captured one or more images.
- the memory is configured to store the captured one or more images.
- FIG. 1 is a schematic structural diagram of an optical lens provided by a first embodiment of the present disclosure
- FIG. 2 is a schematic structural diagram of an imaging device provided by the first embodiment of the present disclosure
- FIG. 3 is a diagram showing field curvature curves of the optical lens provided by the first embodiment of the present disclosure:
- FIG. 4 is a diagram showing distortion curves of the optical lens provided by the first embodiment of the present disclosure.
- FIG. 5 is a diagram showing on-axis spherical aberration curves of the optical lens provided by the first embodiment of the present disclosure
- FIG. 6 is a diagram showing lateral chromatic aberration curves of the optical lens provided by the first embodiment of the present disclosure
- FIG. 7 is a diagram showing field curvature curves of the optical lens provided by a second embodiment of the present disclosure:
- FIG. 8 is a diagram showing distortion curves of the optical lens provided by the second embodiment of the present disclosure.
- FIG. 9 is a diagram showing on-axis spherical aberration curves of the optical lens provided by the second embodiment of the present disclosure.
- FIG. 10 is a diagram showing lateral chromatic aberration curves of the optical lens provided by the second embodiment of the present disclosure.
- FIG. 11 is a diagram showing field curvature curves of the optical lens provided by a third embodiment of the present disclosure:
- FIG. 12 is a diagram showing distortion curves of the optical lens provided by the third embodiment of the present disclosure.
- FIG. 13 is a diagram showing on-axis spherical aberration curves of the optical lens provided by the third embodiment of the present disclosure.
- FIG. 14 is a diagram showing lateral chromatic aberration curves of the optical lens provided by the third embodiment of the present disclosure.
- FIG. 15 is a diagram showing field curvature curves of the optical lens provided by a fourth embodiment of the present disclosure.
- FIG. 16 is a diagram showing distortion curves of the optical lens provided by the fourth embodiment of the present disclosure.
- FIG. 17 is a diagram showing on-axis spherical aberration curves of the optical lens provided by the fourth embodiment of the present disclosure.
- FIG. 18 is a diagram showing lateral chromatic aberration curves of the optical lens provided by the fourth embodiment of the present disclosure.
- FIG. 19 is a schematic structural diagram showing a cross-section of a camera module provided by a fifth embodiment of the present disclosure.
- FIG. 20 is a schematic block diagram of a camera provided by a sixth embodiment of the present disclosure.
- FIG. 21 is a schematic diagram of the camera provided by the sixth embodiment of the present disclosure.
- FIG. 1 a schematic structural diagram of an optical lens 100 provided by a first embodiment of the present disclosure is shown.
- the optical lens 100 sequentially includes a first lens L 1 , a second lens L 2 , a stop ST, a third lens L 3 , a fourth lens L 4 , a fifth lens L 5 , and a filter G.
- the first lens L 1 has a positive focal power.
- An object side surface S 1 of the first lens L 1 is convex and an image side surface S 2 of the first lens L 1 is convex.
- the second lens L 2 has a negative focal power.
- An image side surface S 4 of the second lens L 2 is concave.
- the stop ST is disposed behind the second lens L 2 , specifically, the stop ST is disposed between the second lens L 2 and the third lens L 3 . Accordingly, the sensitivity of the first lens L 1 and the second lens L 2 can be effectively reduced, and thus the first and second lenses can be easily processed and produced.
- the third lens L 3 has a negative focal power.
- An object side surface S 5 of the third lens L 3 is concave, and an image side surface S 6 of the third lens L 3 is convex.
- the fourth lens L 4 has a negative focal power.
- An object side surface S 7 of the fourth lens L 4 is concave, and an image side surface S 8 of the fourth lens L 4 is convex.
- the fifth lens L 5 has a positive focal power.
- An object side surface S 9 of the fifth lens L 5 is convex at a paraxial region thereof, and an image side surface S 10 of the fifth lens L 5 is concave at a paraxial region thereof.
- the aberrations of the optical lens can be effectively corrected, and thus the exit angle of light can be effectively controlled.
- the first lens L 1 , the second lens L 2 , the third lens L 3 , the fourth lens L 4 , and the fifth lens L 5 may be aspherical lenses.
- the number of lenses can be effectively reduced, and a good optical performance can be provided while reducing the weight and volume.
- the first lens L 1 , the second lens L 2 , the third lens L 3 , the fourth lens L 4 , and the fifth lens L 5 may all be plastic aspherical lenses.
- the plastic material enables the volume of the optical lens and the manufacturing cost thereof to be effectively reduced.
- the optical lens 100 may further include the filter G disposed between the fifth lens L 5 and an imaging plane P.
- the filter G can be used to selectively filter a part of the light, so as to optimize the imaging effect.
- the imaging plane P may be a plane where a clear image can be formed on the image side by the light incident from the object side and passing through the optical lens 100 .
- the imaging device 1000 includes the above-mentioned optical lens 100 and an imaging component 200 for converting an optical image formed by the optical lens 100 into an electrical signal.
- the imaging component 200 is disposed on the image side of the optical lens 100 , and the photosensitive surface of the imaging component 200 (i.e., a surface of the imaging component 200 facing towards the optical lens 100 ) can overlap with the imaging surface P to obtain a clear image.
- the imaging component 200 may be a photoelectric sensor device used in imaging, such as Charge-coupled Device (CCD), and Complementary Metal Oxide Semiconductor (CMOS).
- CCD Charge-coupled Device
- CMOS Complementary Metal Oxide Semiconductor
- the imaging device 1000 may be applied to an optical imaging system of a small portable electronic device.
- the optical lens 100 satisfies an expression: ⁇ 1 ⁇ f 12 /f 345 ⁇ 0;
- the optical lens 100 satisfies expressions: 0.8 ⁇ CT 2-i /CT 2 ⁇ 1.2; and 0.8 ⁇ CT 3-i /CT 3 ⁇ 1.2;
- the optical lens 100 satisfies an expression: 0 ⁇ f 1 /f ⁇ 1;
- the optical lens 100 satisfies an expression: 3 ⁇ f 5 /f ⁇ 6;
- the optical lens 100 satisfies an expression: ⁇ 3 ⁇ ( R 7 +R 8 )/( R 7 ⁇ R 8 ) ⁇ 0;
- the optical lens 100 satisfies an expression: 15 ⁇ R 9 /f 5 ⁇ 30:
- the optical lens 100 satisfies an expression: 0 ⁇ Td /Img H ⁇ 2;
- the maximum diameter of the fifth lens is greater than that of each of the first lens, the second lens, the third lens and the fourth lens, and a diameter of the stop is smaller than the maximum diameter of each of the lenses.
- a center thickness of the fifth lens is greater than that of each of the first lens, the second lens, the third lens and the fourth lens.
- a distance on the optical axis that is between the third lens and the fourth lens is greater than a distance on the optical axis that is between the stop and the third lens.
- At least a portion away from the optical axis of the object side surface of the fifth lens is concave, and at least a portion away from the optical axis of the image side surface of the fifth lens is convex.
- center thickness of the first lens is greater than a center thickness of the second lens.
- the size of the entire optical lens 100 can be effectively reduced, and a clear image can be obtained with a large aperture.
- five plastic aspherical lenses are adopted, and thus the optical lens has a small volume and a compact structure, and can provide a good optical imaging quality, thereby being suitable for various portable electronic devices.
- field curvature curves, distortion curves, on-axis spherical aberration curves, and lateral chromatic aberration curves of the optical lens 100 provided in this embodiment are shown, respectively. It can be seen from the drawings that the field curvature, distortion and chromatic aberration are all well corrected.
- the design parameters of the optical lens 100 provided by this embodiment are shown in Table 1.
- aspheric parameters of the various lenses of the optical lens 100 are shown in Tables 2-1 and 2-2.
- the size of the entire optical lens is effectively reduced, and high imaging quality is achieved at the same time.
- they have advantages of small size and high imaging quality, and thus can be well applicable to portable electronic devices, and can effectively improve the users shooting experience.
- the stop is disposed behind the second lens, the first lens and the second lens each have reduced sensitivity, and thus can be easily processed and produced.
- the structure of the optical lens 100 provided by this embodiment is substantially the same as the above-mentioned first embodiment, and the biggest differences lie in the design parameters.
- field curvature curves, distortion curves, on-axis spherical aberration curves, and lateral chromatic aberration curves of the optical lens 100 provided in this embodiment are shown, respectively. It can be seen from the drawings that the field curvature, distortion and chromatic aberration are all well corrected.
- the design parameters of the optical lens 100 provided in this embodiment are shown in Table 3.
- aspheric parameters of the various lenses of the optical lens 100 are shown in Tables 4-1 and 4-2.
- the structure of the optical lens 100 provided by this embodiment is substantially the same as the above-mentioned first embodiment, and the biggest differences lie in the design parameters.
- field curvature curves, distortion curves, on-axis spherical aberration curves, and lateral chromatic aberration curves of the optical lens 100 provided in this embodiment are shown, respectively. It can be seen from the drawings that the field curvature, distortion and chromatic aberration are all well corrected.
- the design parameters of the optical lens 100 provided by this embodiment are shown in Table 5.
- aspheric parameters of the various lenses of the optical lens 100 are shown in Tables 6-1 and 6-2.
- the structure of the optical lens 100 provided by this embodiment is substantially the same as the above-mentioned first embodiment, and the biggest differences lie in the design parameters.
- field curvature curves, distortion curves, on-axis spherical aberration curves, and lateral chromatic aberration curves of the optical lens 100 provided in this embodiment are shown, respectively. It can be seen from the drawings that the field curvature, distortion and chromatic aberration are all well corrected.
- the design parameters of the optical lens 100 provided by this embodiment are shown in Table 7.
- aspheric parameters of the various lenses of the optical lens 100 are shown in Tables 8-1 and 8-2.
- optical characteristics and values related to the above expressions of the optical lens 100 corresponding to the above four embodiments are shown, the optical characteristics including the focal length f of the optical lens 100 , the aperture number F #, the total optical length TTL and the field of view (FOV) 2 ⁇ .
- the thickness, radius of curvature, and material of each lens of the optical lens 100 are partially different, which may refer to the tables of the parameters in the above embodiments. It can be seen from the field curvature and distortion curves of the above embodiments that, the field curvature of the optical lens in each of the embodiments is less than 0.1 mm, and the distortion of the optical lens is less than 2%, which shows that the resulting image has low distortion and high definition.
- the optical lens and imaging device provided by the embodiments of the present disclosure, by means of the reasonable coordination of the shapes of the various lenses and the combination of the focal powers of the various lenses, the size of the entire optical lens is effectively reduced, and the length of the optical lens is effectively controlled to satisfy TTL ⁇ 4.0 mm.
- the field of view of the optical lens is enabled to satisfy 2 ⁇ 80°, which provides a large shooting range, satisfying the requirements of wide-angle shooting.
- the stop behind the second lens the sensitivity of the first lens and the second lens is effectively reduced, and thus the first and second lenses can be easily processed and produced, which facilitates the improvement of product yield. That is, the optical lens provided by the embodiments of the present disclosure has advantages of a small size, a wide field of view, and high imaging quality, which can be well applicable to portable electronic devices, and can effectively improve the user's shooting experience.
- the camera module 500 includes a barrel 501 , a holder 502 , an image sensor 503 , a printed circuit board 504 , and the optical lens 100 provided by any of the embodiments as described above.
- the optical lens 100 is received in the barrel 501 , and the barrel 501 is engaged with the holder 502 .
- the image sensor 503 and the printed circuit board 504 are substantially accommodated in the holder 502 .
- the image sensor 503 is opposite to the optical lens 100 and is mounted on the printed circuit board 504 .
- the image sensor 503 is configured for converting images formed by the optical lens 100 into electrical signals, thereby the images formed by the optical lens 100 can be converted and transmitted to a processor.
- the printed circuit board 504 can be further electrically connected to a chip or the processor via a flexible circuit board.
- a camera 600 is applied to an electronic device 700 .
- the camera 600 is illustrated as a front camera of an electronic device, but it also may be a rear camera of the electronic device, which is not limited in the embodiments of the present disclosure.
- the camera 600 includes the camera module 500 as mentioned above, a processor 601 , and a memory 602 .
- the camera module 500 is configured to capture one or more images
- the processor 601 is configured to process the captured one or more images
- the memory 602 is configured to store the captured one or more images.
- the processor 601 is communicated with the camera module 500 and the memory 602 . That is, the electrical signals of the images can be transmitted to the processor 601 and stored in the memory 602 .
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Abstract
Description
−1<f 12 /f 345<0:
-
- where f12 is a combined focal length of the first lens and the second lens, and f345 is a combined focal length of the third lens, the fourth lens and the fifth lens.
−1<f 12 /f 345<0;
-
- where f12 is a combined focal length of the first lens L1 and the second lens L2, and f345 is a combined focal length of the third lens L3, the fourth lens L4 and the fifth lens L5. When this expression is satisfied, the sensitivity to eccentricity of the optical lens can be effectively reduced, and the resolution of the edge of the optical lens can be improved.
0.8<CT 2-i /CT 2<1.2; and
0.8<CT 3-i /CT 3<1.2;
-
- where CT2-i is a thickness at any position of the second lens along a normal direction (a direction of a line perpendicular to a tangent to an aspheric curve at the any position of the second lens), CT3-i is a thickness at any position of the third lens along a normal direction (a direction of a line perpendicular to a tangent to an aspheric curve at the any position of the third lens), CT2 is a center thickness of the second lens, and CT3 is a center thickness of the third lens. The values of CT2-i/CT2 and CT3-i/CT3 are both greater than 0.8, which facilitates the shaping of the second lens L2 and the third lens L3, and causes high-order aberrations not easily to occur for the off-axis light, thereby obtaining stable performance. The values of CT2-i/CT2 and CT3-i/CT3 are both less than 1.2, which causes the difficulty of correcting field curvature and coma to be reduced. That is, when the values of CT2-i/CT2 and CT3-i/CT3 are within the range of the expressions mentioned above, the second lens L2 and the third lens L3 are enabled to have a uniform thickness at any position, and they can be easily shaped.
0<f 1 /f<1;
-
- where f1 is a focal length of the first lens, and f is a focal length of the optical lens. The value of f1/f is greater than 0, which avoids the focal power and the sensitivity to eccentricity of the first lens L1 from being increased. The value of f1/f is less than 1, which enables the difficulty of correcting the field curvature to be reduced.
3<f 5 /f<6;
-
- where f5 is a focal length of the fifth lens, and f is the focal length of the optical lens. The value of f5/f is greater than 3, which avoids the focal power and the sensitivity to eccentricity of the fifth lens L5 from being increased. The value of f5/f is less than 6, which enables the difficulty of correcting the field curvature to be reduced.
−3<(R 7 +R 8)/(R 7 −R 8)<0;
-
- where R7 is a radius of curvature of the object side surface of the fourth lens, and R8 is a radius of curvature of the image side surface of the fourth lens. The expression defines a curve shape of the fourth lens L4. When the value of (R7+R8)/(R7−R8) is greater than −3, high-order aberrations are unlikely to occur for the off-axis light, thereby obtaining stable performance. When the value of (R7+R8)/(R7−R8) is less than 0, the difficulty of correcting field curvature and coma is reduced.
15<R 9 /f 5<30:
-
- where R9 is a radius of curvature of the object side surface of the fifth lens, and f5 is a focal length of the fifth lens. When the value of R9/f5 is greater than 15, it avoids the field curvature and distortion from being increased excessively in a negative direction, thereby reducing the difficulty of correction. When the value of R9/f5 is less than 30, it avoids the field curvature and distortion from being increased excessively in a positive direction, thereby also reducing the difficulty of correction.
0<Td/ImgH<2;
-
- where Td is a distance on the optical axis that is between the object side surface of the first lens and the image side surface of the fifth lens, and ImgH is half of an image height of the optical lens on the imaging plane. When this expression is satisfied, the total optical length of the optical lens can be effectively shortened, and the miniaturization of the
optical lens 100 is promoted.
- where Td is a distance on the optical axis that is between the object side surface of the first lens and the image side surface of the fifth lens, and ImgH is half of an image height of the optical lens on the imaging plane. When this expression is satisfied, the total optical length of the optical lens can be effectively shortened, and the miniaturization of the
-
- where z represents a vector height between a point on a curved surface and a vertex of the curved surface along the optical axis, h is a distance between the point on the curved surface and the optical axis, c is a paraxial radius of the surface, k is quadratic surface coefficient conic, and A2i is a 2i-th order aspheric profile coefficient.
| TABLE 1 | |||||
| Radius of | Thick- | ||||
| Surface | curvature | ness | Refractive | Abbe | |
| No. | (mm) | (mm) | index | number | |
| Object surface | — | — | |||
| S1 | First lens L1 | 1.180 | 0.535 | ||
| S2 | 6.689 | 0.029 | 1.544 | 55.987 | |
| S3 | Second lens | 9.906 | 0.269 | ||
| S4 | L2 | 3.785 | 0.090 | 1.671 | 19.238 |
| ST | Stop ST | — | 0.222 | ||
| S5 | Third lens L3 | −6.813 | 0.322 | 1.651 | 21.514 |
| S6 | −9.746 | 0.366 | |||
| S7 | Fourth lens L4 | −3.031 | 0.324 | 1.64 | 23.529 |
| S8 | −9.083 | 0.025 | |||
| S9 | Fifth lens L5 | 1.374 | 0.729 | 1.544 | 55.987 |
| S10 | 1.363 | 0.260 | |||
| S11 | Filter G | — | 0.210 | 1.517 | 64.198 |
| S12 | — | 0.525 | |||
| Imaging plane | — | — | |||
| P | |||||
| TABLE 2-1 | ||||||
| Surface No. | k | A4 | A6 | A8 | A10 | A12 |
| S1 | −4.80E+00 | 9.24E−01 | −2.97E−01 | −1.89E+01 | 1.81E+02 | −9.92E+02 |
| S2 | −1.00E+02 | −5.32E−01 | 3.58E−01 | 7.56E+00 | −9.60E+01 | 7.16E+02 |
| S3 | −1.00E+02 | −1.89E−01 | 2.89E+00 | −2.51E+01 | 2.89E+02 | −1.85E+03 |
| S4 | 1.92E+01 | 1.89E−01 | 3.46E+00 | −6.91E+01 | 1.10E+03 | −1.02E+04 |
| S5 | 5.84E+01 | −3.51E−01 | −4.90E+00 | 5.86E+01 | −5.81E+02 | 4.04E+03 |
| S6 | 6.46E+01 | 9.39E−02 | −6.81E+00 | 5.18E+01 | −2.87E+02 | 1.09E+03 |
| S7 | −9.37E+01 | 1.18E+00 | −5.84E+00 | 1.92E+01 | −6.41E+01 | 1.61E+02 |
| S8 | 2.03E+01 | 3.93E−02 | 1.88E+00 | −9.61E+00 | 2.21E+01 | −3.26E+01 |
| S9 | −1.74E+01 | −9.33E−01 | 9.26E−01 | −4.22E−01 | 1.62E−01 | −1.41E−01 |
| S10 | −5.52E+00 | −5.91E−01 | 6.38E−01 | −5.01E−01 | 1.04E−01 | 1.95E−01 |
| TABLE 2-2 | ||||
| Surface No. | A14 | A16 | A18 | A20 |
| S1 | 3.29E+03 | −6.65E−03 | 7.44E−03 | −3.48E−03 |
| S2 | −3.46E+03 | 9.83E+03 | −1.49E+04 | 9.29E+03 |
| S3 | 6.83E+03 | −1.44E+04 | 1.59E+04 | −6.96E+03 |
| S4 | 5.80E+04 | −1.95E+05 | 3.59E+05 | −2.83E+05 |
| S5 | −1.80E−04 | 4.85E+04 | −7.09E+04 | 4.25E+04 |
| S6 | −2.69E+03 | 4.10E+03 | −3.47E+03 | 1.23E+03 |
| S7 | −2.81E+02 | 3.05E+02 | −1.78E+02 | 4..20E+01 |
| S8 | 3.17E+01 | −1.91E+01 | 6.43E+00 | −9.13E−01 |
| S9 | 1.09E−01 | −4.65E−02 | 1.01E−02 | −8.94E−04 |
| S10 | −1.95E−01 | 7.88E−02 | −1.52E−02 | 1.14E−03 |
| TABLE 3 | |||||
| Radius of | Thick- | ||||
| Surface | curvature | ness | Refractive | Abbe | |
| No. | (mm) | (mm) | index | number | |
| Object surface | — | — | |||
| S1 | First lens L1 | 1.179 | 0.534 | ||
| S2 | 6.512 | 0.030 | 1.544 | 55.987 | |
| S3 | Second lens | 10.291 | 0.267 | ||
| S4 | L2 | 3.891 | 0.089 | 1.671 | 19.238 |
| ST | Stop ST | — | 0.226 | ||
| S5 | Third lens L3 | −7.484 | 0.320 | 1.651 | 21.514 |
| S6 | −10.966 | 0.368 | |||
| S7 | Fourth lens L4 | −3.142 | 0.324 | 1.64 | 23.529 |
| S8 | −9.649 | 0.025 | |||
| S9 | Fifth lens L5 | 1.413 | 0.745 | 1.544 | 55.987 |
| S10 | 1.382 | 0.260 | |||
| S11 | Filter G | — | 0.210 | 1.517 | 64.198 |
| S12 | — | 0.507 | |||
| Imaging plane | — | — | |||
| P | |||||
| TABLE 4-1 | ||||||
| Surface No. | k | A4 | A6 | A8 | A10 | A12 |
| S1 | −4.80E+00 | 9.29E−01 | −3.12E−01 | −1.89E+01 | 1.81E+02 | −9.92E+02 |
| S2 | −1.00E+02 | −5.40E−01 | 3.62E−01 | 7.62E+00 | −9.59E+01 | 7.16E+02 |
| S3 | −1.00E+02 | −2.16E−01 | 2.95E+00 | −2.50E+01 | 2.89E+02 | −1.85E+03 |
| S4 | 1.95E+01 | 1.94E−01 | 3.48E+00 | −6.91E+01 | 1.10E+03 | −1.02E+04 |
| S5 | 6.23E+01 | −3.66E−01 | −4.95E+00 | 5.86E+01 | −5.82E+02 | 4.04E+03 |
| S6 | 6.78E+01 | 8.31E−02 | −6.82E+00 | 5.18E+01 | −2.87E+02 | 1.09E+03 |
| S7 | −9.63E+01 | 1.19E+00 | −5.86E+00 | 1.92E+01 | −6.41E+01 | 1.61E+02 |
| S8 | 2.08E+01 | 4.07E−02 | 1.87E+00 | −9.61E+00 | 2.21E+01 | −3.26E+01 |
| S9 | −1.82E+01 | −9.31E−01 | 9.26E−01 | −4.21E−01 | 1.62E−01 | −1.41E−01 |
| S10 | −5.48E+00 | −5.85E−01 | 6.34E−01 | −5.00E−01 | 1.04E−01 | 1.95E−01 |
| TABLE 4-2 | ||||
| Surface No. | A14 | A16 | A18 | A20 |
| S1 | 3.29E+03 | −6.65E+03 | 7.44E+03 | −3.48E+03 |
| S2 | −3.46E+03 | 9.82E+03 | −1.49E+04 | 9.29E+03 |
| S3 | 6.83E+03 | −1.44E+04 | 1.59E+04 | −6.99E+03 |
| S4 | 5.80E+04 | −1.95E+05 | 3.59E+05 | −2.84E+05 |
| S5 | −1.80E+04 | 4.85E+04 | −7.09E+04 | 4.24E+04 |
| S6 | −2.69E+03 | 4.10E+03 | −3.47E+03 | 1.23E+03 |
| S7 | −2.81E+02 | 3.05E+02 | −1.78E+02 | 4.21E+01 |
| S8 | 3.17E+01 | −1.91E+01 | 6.43E+00 | −9.13E−01 |
| S9 | 1.09E−01 | −4.65E−02 | 1.01E−02 | −8.93E−04 |
| S10 | −1.95E−01 | 7.88E−02 | −1.52E−02 | 1.14E−03 |
| TABLE 5 | |||||
| Radius of | Thick- | ||||
| Surface | curvature | ness | Refractive | Abbe | |
| No. | (mm) | (mm) | index | number | |
| Object surface | — | — | |||
| S1 | First lens L1 | 1.178 | 0.532 | ||
| S2 | 6.281 | 0.034 | 1.544 | 55.987 | |
| S3 | Second lens | 10.968 | 0.264 | ||
| S4 | L2 | 4.060 | 0.086 | 1.671 | 19.238 |
| ST | Stop ST | — | 0.229 | ||
| S5 | Third lens L3 | −7.697 | 0.319 | 1.651 | 21.514 |
| S6 | −11.753 | 0.369 | |||
| S7 | Fourth lens L4 | −3.318 | 0.323 | 1.640 | 23.529 |
| S8 | −10.187 | 0.025 | |||
| S9 | Fifth lens L5 | 1.446 | 0.765 | 1.535 | 55.664 |
| S10 | 1.392 | 0.260 | |||
| S11 | Filter G | — | 0.210 | 1.517 | 64.198 |
| S12 | — | 0.492 | |||
| Imaging plane | — | — | |||
| P | |||||
| TABLE 6-1 | ||||||
| Surface No. | k | A4 | A6 | A8 | A10 | A12 |
| S1 | −4.76E+00 | 9.34E−01 | −3.40E−01 | −1.89E+01 | 1.82E+02 | −9.93E+02 |
| S2 | −9.73E+01 | −5.29E−01 | 3.33E−01 | 7.70E+00 | −9.58E+01 | 7.15E+02 |
| S3 | −1.00E+02 | −2.40E−01 | 3.04E+00 | −2.50E+01 | 2.88E+02 | −1.85E+03 |
| S4 | 1.93E+01 | 1.95E−01 | 3.54E+00 | −6.89E+01 | 1.10E+03 | −1.02E+04 |
| S5 | 7.78E+01 | −3.71E−01 | −4.87E+00 | 5.85E+01 | −5.82E+02 | 4.04E+03 |
| S6 | 6.95E+01 | 6.83E−02 | −6.79E+00 | 5.18E+01 | −2.87E+02 | 1.09E+03 |
| S7 | −1.00E+02 | 1.21E+00 | −5.86E+00 | 1.92E+01 | −6.41E+01 | 1.62E+02 |
| S8 | 2.49E+01 | 4.92E−0.2 | 1.87E+00 | −9.63E+00 | 2.22E+01 | −3.26E+01 |
| S9 | −1.89E+01 | −9.27E−01 | 9.28E−01 | −4.23E−01 | 1.62E−01 | −1.41E−01 |
| S10 | −5.32E+00 | −5.77E−01 | 6.26E−01 | −4.97E−01 | 1.05E−01 | 1.95E−01 |
| TABLE 6-2 | ||||
| Surface No. | A14 | A16 | A18 | A20 |
| S1 | 3.29E+03 | −6.64E+03 | 7.43E+03 | −3.49E+03 |
| S2 | −3.46E+03 | 9.82E+03 | −1.48E+04 | 9.25E+03 |
| S3 | 6.85E+03 | −1.43E+04 | 1.57E+04 | −6.85E+03 |
| S4 | 5.80E+04 | −1.95E+05 | 3.59E+05 | −2.81E+05 |
| S5 | −1.80E+04 | 4.85E+04 | −7.09E+04 | 4.22E+04 |
| S6 | −2.69E+03 | 4.09E+03 | −3.47E+03 | 1.24E+03 |
| S7 | −2.82E+02 | 3.05E+07 | −1.78E+02 | 4.22E+01 |
| S8 | 3.17E+01 | −1.92E+01 | 6.43E+00 | −9.12E−01 |
| S9 | 1.09E−01 | −4.66E−02 | 1.01E−02 | −8.94E−04 |
| S10 | −1.95E−01 | 7.88E−02 | −1.52E−02 | 1.14E−03 |
| TABLE 7 | |||||
| Radius of | Thick- | ||||
| Surface | curvature | ness | Refractive | Abbe | |
| No. | (mm) | (mm) | index | number | |
| Object surface | — | — | |||
| S1 | First lens L1 | 1.193 | 0.576 | ||
| S2 | 6.722 | 0.026 | 1.544 | 55.987 | |
| S3 | Second lens | 109.731 | 0.279 | ||
| S4 | L2 | 7.475 | 0.063 | 1.671 | 19.238 |
| ST | Stop ST | — | 0.249 | ||
| S5 | Third lens L3 | −6.569 | 0.314 | 1.651 | 21.514 |
| S6 | −11.550 | 0.392 | |||
| S7 | Fourth lens L4 | −3.216 | 0.293 | 1.651 | 21.514 |
| S8 | −12.175 | 0.025 | |||
| S9 | Fifth lens L5 | 1.439 | 0.820 | 1.544 | 55.987 |
| S10 | 1.434 | 0.260 | |||
| S11 | Filter G | — | 0.210 | 1.517 | 64.198 |
| S12 | — | 0.477 | |||
| Imaging plane | — | — | |||
| P | |||||
| TABLE 8-1 | ||||||
| Surface No. | k | A4 | A6 | A8 | A10 | A12 |
| S1 | −4.94E+00 | 9.38E−01 | −3.25E−01 | −1.86E+01 | 1.81E+02 | −9.93E+02 |
| S2 | −1.00E+02 | −5.25E−01 | 4.25E−01 | 8.51E+00 | −9.78E+01 | 7.11E+02 |
| S3 | 7.89E+01 | −2.87E−01 | 3.00E+00 | −2.51E+01 | 2.85E+02 | 4.85E+03 |
| S4 | 3.58E+01 | 1.59E−01 | 3.19E+00 | −6.96E+01 | 1.10E+03 | −1.03E+04 |
| S5 | 8.96E+01 | −3.93E−01 | −4.99E+00 | 5.93E+01 | −5.88E+02 | 4.02E+03 |
| S6 | 1.00E+02 | 4.12E−02 | −6.67E+00 | 5.12E+01 | −2.88E+02 | 1.10E+03 |
| S7 | −1.00E+02 | 1.28E+00 | −5.86E+00 | 1.90E+01 | −6.38E+01 | 1.61E+02 |
| S8 | 5.11E+01 | 9.99E−02 | 1.83E+00 | −9.68E+00 | 2.21E+01 | −3.26E+01 |
| S9 | −1.93E+01 | −9.19E−01 | 9.24E−01 | −4.24E−01 | 1.61E−01 | −1.40E−01 |
| S10 | −4.98E+00 | −5.69E−01 | 6.22E−01 | −4.98E−01 | 1.05E−01 | 1.96E−01 |
| TABLE 8-2 | ||||
| Surface No. | A14 | A16 | A18 | A20 |
| S1 | 3.30E+03 | −6.67E+03 | 7.49E+03 | −3.57E+03 |
| S2 | −3.46E+03 | 9.82E+03 | −1.48E+04 | 9.16E+03 |
| S3 | 6.84E+03 | −1.44E+04 | 1.56E+04 | −6.50E+03 |
| S4 | 5.79E+04 | −1.95E+05 | 3.60E+05 | −2.84E+05 |
| S5 | −1.80E+04 | 4.90E+04 | −7.06E+04 | 3.60E+04 |
| S6 | −2.70E+03 | 4.09E+03 | −3.47E−03 | 1.26E+03 |
| S7 | −2.81E+02 | 3.04E+02 | −1.77E+02 | 4.25E+01 |
| S8 | 3.17E+01 | −1.92E+01 | 6.43E+00 | −9.08E−01 |
| S9 | 1.09E−01 | −4.65E−02 | 1.01E−02 | −8.94E−04 |
| S10 | −1.94E−01 | 7.83E−02 | −1.51E−02 | 1.15E−03 |
| TABLE 9 | ||||
| Embodi- | Embodi- | Embodi- | Embodi- | |
| |
ment 2 | |
ment 4 | |
| ƒ (mm) | 3.398 | 3.395 | 3.398 | 3.393 |
| F# | 2.28 | 2.28 | 2.28 | 2.28 |
| TTL (mm) | 3.90 | 3.90 | 3.91 | 3.94 |
| 2θ | 80° | 80° | 80° | 80° |
| f12/f345 | −0.395 | −0.404 | −0.411 | −0.470 |
| CT2-i/CT2 | 0.933 | 0.931 | 0.928 | 0.931 |
| CT3-i/CT3 | 1.167 | 1.165 | 1.162 | 1.125 |
| f1/f | 0.746 | 0.750 | 0.753 | 0.757 |
| f5/f | 4.107 | 4.546 | 5.174 | 3.916 |
| (R7 + R8)/(R7 − R8) | −2.001 | −1.966 | −1.966 | −1.718 |
| R9/f5 | 19.184 | 21.804 | 25.422 | 19.123 |
| Td/ImgH | 1.273 | 1.281 | 1.289 | 1.307 |
Claims (20)
−1<f 12 /f 345<0;
0.8<CT 2-i /CT 2<1.2; and
0.8<CT 3-i /CT 3<1.2;
0<f 1 /f<1;
3<f 5 /f<6;
−3<(R 7 +R 8)/(R 7 −R 8)<0;
15<R 9 /f 5<30;
0<Td/ImgH<2:
0<f 1 /f<1;
−1<f 12 /f 345<0; and
3<f 5 /f<6;
0.8<CT 2-i /CT 2<1.2;
0.8<CT 3-i /CT 3<1.2;
−3<(R 7 +R 8)/(R 7 −R 8)<0;
15<R 9 /f 5<30;
0<Td/ImgH<2;
0.8<CT 2-i /CT 2<1.2;
3<f 5 /f<6;
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201910705523.9 | 2019-08-01 | ||
| CN201910705523.9A CN110231702B (en) | 2019-08-01 | 2019-08-01 | Optical lens and imaging device |
| PCT/CN2020/095106 WO2021017650A1 (en) | 2019-08-01 | 2020-06-09 | Optical lens and imaging device |
Related Parent Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/CN2020/095106 Continuation-In-Part WO2021017650A1 (en) | 2019-08-01 | 2020-06-09 | Optical lens and imaging device |
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| US20220159153A1 US20220159153A1 (en) | 2022-05-19 |
| US11877043B2 true US11877043B2 (en) | 2024-01-16 |
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| US17/585,507 Active 2040-12-16 US11877043B2 (en) | 2019-08-01 | 2022-01-26 | Optical lens, camera module and camera |
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| Country | Link |
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| US (1) | US11877043B2 (en) |
| CN (1) | CN110231702B (en) |
| WO (1) | WO2021017650A1 (en) |
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| CN110231702B (en) * | 2019-08-01 | 2019-11-08 | 江西联益光学有限公司 | Optical lens and imaging device |
| CN111142241B (en) * | 2020-03-04 | 2025-04-29 | 浙江舜宇光学有限公司 | Optical imaging system |
| CN111443467B (en) * | 2020-05-20 | 2024-06-21 | 威海世高光电子有限公司 | Periscope type long-focus lens and electronic equipment |
| CN111929843B (en) * | 2020-09-22 | 2020-12-18 | 瑞泰光学(常州)有限公司 | Image pickup optical lens |
| CN113777762B (en) * | 2021-11-10 | 2022-04-01 | 江西联益光学有限公司 | Optical lens and imaging apparatus |
| CN118226620B (en) * | 2024-05-27 | 2024-09-10 | 江西联昊光电有限公司 | Optical lens |
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| WO2021017650A1 (en) | 2021-02-04 |
| CN110231702A (en) | 2019-09-13 |
| US20220159153A1 (en) | 2022-05-19 |
| CN110231702B (en) | 2019-11-08 |
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